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模糊统计模型在教学质量评估中的应用
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作者 孙蔓慧 《本溪冶金高等专科学校学报》 2000年第1期50-52,共3页
如何评价教师的教学质量 ,这是学校管理科学化的一个重要内容 ,文中将模糊试验演变成随机试验 ,对量化数据进行分析和研究 ,采用数理统计方法进行评价分折。
关键词 教学质量评估 模糊统计模型 数理统计方法
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用模糊分级统计模型评估水稻病虫综合防治经济效益 被引量:1
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作者 封光华 《农业技术经济》 北大核心 1990年第3期15-19,共5页
简述模糊分级统计模型方法,具体评估了江西省万安县1988年水稻病虫综合防治的经济效益。
关键词 模糊分级统计模型 评估 水稻病虫害 综合防治 经济效益
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生态工业园评价系统中模糊统计聚类模型的建立 被引量:2
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作者 张艳 《武汉大学学报(工学版)》 CAS CSCD 北大核心 2011年第1期104-106,共3页
通过对生态工业园定义内涵及评价原则的分析,论文确立了由经济、生态环境、生态工业特征和管理4大类指标及下属25个指标组成的评价指标体系;采用5级评价标准集合定义评价指标等级,选用关联度方法确定各评价指标的权重;运用模糊统计聚类... 通过对生态工业园定义内涵及评价原则的分析,论文确立了由经济、生态环境、生态工业特征和管理4大类指标及下属25个指标组成的评价指标体系;采用5级评价标准集合定义评价指标等级,选用关联度方法确定各评价指标的权重;运用模糊统计聚类分析原理,选用接近度原则进行分级,构建了一个反映生态工业园运行绩效的评价模型,可以对园区运行现状和今后的发展趋势作出比较合理的预测与评价. 展开更多
关键词 生态工业园 评价指标体系 关联度方法 模糊统计聚类模型
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Calculation of maximum surface settlement induced by EPB shield tunnelling and introducing most effective parameter 被引量:6
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作者 Sayed Rahim Moeinossadat Kaveh Ahangari Kourosh Shahriar 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第12期3273-3283,共11页
This study aims to predict ground surface settlement due to shallow tunneling and introduce the most affecting parameters on this phenomenon.Based on data collected from Shanghai LRT Line 2 project undertaken by TBM-E... This study aims to predict ground surface settlement due to shallow tunneling and introduce the most affecting parameters on this phenomenon.Based on data collected from Shanghai LRT Line 2 project undertaken by TBM-EPB method,this research has considered the tunnel's geometric,strength,and operational factors as the dependent variables.At first,multiple regression(MR) method was used to propose equations based on various parameters.The results indicated the dependency of surface settlement on many parameters so that the interactions among different parameters make it impossible to use MR method as it leads to equations of poor accuracy.As such,adaptive neuro-fuzzy inference system(ANFIS),was used to evaluate its capabilities in terms of predicting surface settlement.Among generated ANFIS models,the model with all input parameters considered produced the best prediction,so as its associated R^2 in the test phase was obtained to be 0.957.The equations and models in which operational factors were taken into consideration gave better prediction results indicating larger relative effect of such factors.For sensitivity analysis of ANFIS model,cosine amplitude method(CAM) was employed; among other dependent variables,fill factor of grouting(n) and grouting pressure(P) were identified as the most affecting parameters. 展开更多
关键词 surface settlement shallow tunnel tunnel boring machine (TBM) multiple regression (MR) adaptive neuro-fuzzyinference system (ANFIS) cosine amplitude method (CAM)
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